Literature DB >> 23864689

Expression of the γ2-subunit distinguishes synaptic and extrasynaptic GABA(A) receptors in NG2 cells of the hippocampus.

Stefan Passlick1, Michael Grauer, Christoph Schäfer, Ronald Jabs, Gerald Seifert, Christian Steinhäuser.   

Abstract

NG2 cells are equipped with transmitter receptors and receive direct synaptic input from glutamatergic and GABAergic neurons. The functional impact of these neuron-glia synapses is still unclear. Here, we combined functional and molecular techniques to analyze properties of GABA(A) receptors in NG2 cells of the juvenile mouse hippocampus. GABA activated slowly desensitizing responses in NG2 cells, which were mimicked by muscimol and inhibited by bicuculline. To elucidate the subunit composition of the receptors we tested its pharmacological properties. Coapplication of pentobarbital, benzodiazepines, and zolpidem all significantly increased the GABA-evoked responses. The presence of small tonic currents indicated the presence of extrasynaptic GABA(A) receptors. To further analyze the subunit expression, single cell transcript analysis was performed subsequent to functional characterization of NG2 cells. The subunits α1, α2, β3, γ1, and γ2 were most abundantly expressed, matching properties resulting from pharmacological characterization. Importantly, lack of the γ2-subunit conferred a high Zn²⁺ sensitivity to the GABA(A) receptors of NG2 cells. Judging from the zolpidem sensitivity, postsynaptic GABA(A) receptors in NG2 cells contain the γ2-subunit, in contrast to extrasynaptic receptors, which were not modulated by zolpidem. To determine the effect of GABA(A) receptor activation on membrane potential, perforated patch recordings were obtained from NG2 cells. In the current-clamp mode, GABA depolarized the cells to approximately -30 mV, indicating a higher intracellular Cl⁻ concentration (∼50 mM) than previously reported. GABA-induced depolarization in NG2 cells might trigger Ca²⁺ influx through voltage-activated Ca²⁺ channels.

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Year:  2013        PMID: 23864689      PMCID: PMC6794062          DOI: 10.1523/JNEUROSCI.5562-12.2013

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


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Review 1.  Ion channels in glial cells.

Authors:  A Verkhratsky; C Steinhäuser
Journal:  Brain Res Brain Res Rev       Date:  2000-04

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4.  Functional diversity of GABA-activated Cl- currents in Purkinje versus granule neurons in rat cerebellar slices.

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5.  Micromolar concentrations of Zn2+ antagonize NMDA and GABA responses of hippocampal neurons.

Authors:  G L Westbrook; M L Mayer
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6.  Developmental regulation of voltage-gated K+ channel and GABAA receptor expression in Bergmann glial cells.

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